cs.AI updates on arXiv.org 10月27日 14:19
公关策略框架分析与数据集
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本文探讨了公关活动中信息框架的识别与变化,通过构建一个包含来自Facebook和YouTube的专家标注视频广告数据集,旨在评估视觉语言模型在能源领域战略传播的多模态分析能力。

arXiv:2510.21679v1 Announce Type: new Abstract: Companies spend large amounts of money on public relations campaigns to project a positive brand image. However, sometimes there is a mismatch between what they say and what they do. Oil & gas companies, for example, are accused of "greenwashing" with imagery of climate-friendly initiatives. Understanding the framing, and changes in framing, at scale can help better understand the goals and nature of public relations campaigns. To address this, we introduce a benchmark dataset of expert-annotated video ads obtained from Facebook and YouTube. The dataset provides annotations for 13 framing types for more than 50 companies or advocacy groups across 20 countries. Our dataset is especially designed for the evaluation of vision-language models (VLMs), distinguishing it from past text-only framing datasets. Baseline experiments show some promising results, while leaving room for improvement for future work: GPT-4.1 can detect environmental messages with 79% F1 score, while our best model only achieves 46% F1 score on identifying framing around green innovation. We also identify challenges that VLMs must address, such as implicit framing, handling videos of various lengths, or implicit cultural backgrounds. Our dataset contributes to research in multimodal analysis of strategic communication in the energy sector.

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公关策略 数据集 视觉语言模型 能源领域 多模态分析
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